Environment & Climate Change

36 Items

an operator inspects a photolithography tool used to manufacture these solar cells.

Daniel Derkacs/SolarJunction

Journal Article - Research Policy

Governments as Partners: The Role of Alliances in U.S. Cleantech Startup Innovation

Accelerating innovation in clean energy technologies is a policy priority for governments around the world aiming to mitigate climate change and to provide affordable energy. Most research has focused on the role of governments financing R&D and steering market demand, but there is a more limited understanding of the role of direct government interactions with startups across all sectors. The authors  propose and evaluate the value-creation mechanisms of network resources from different types of partners for startups, highlighting the unique resources of government partners for cleantech startups. 

Solar One power plant

NREL

Journal Article - Nature Energy

Policy Sequencing toward Decarbonization

| November 2017

Many economists have long held that carbon pricing—either through a carbon tax or cap-and-trade—is the most cost-effective way to decarbonize energy systems, along with subsidies for basic research and development. Meanwhile, green innovation and industrial policies aimed at fostering low-carbon energy technologies have proliferated widely. Most of these predate direct carbon pricing. Low-carbon leaders such as California and the European Union (EU) have followed a distinct policy sequence that helps overcome some of the political challenges facing low-carbon policy by building economic interest groups in support of decarbonization and reducing the cost of technologies required for emissions reductions. However, while politically effective, this policy pathway faces significant challenges to environmental and cost effectiveness.

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Journal Article - Climatic Change

Expert Views — and Disagreements — About the Potential of Energy Technology R&D

| June 2016

In order to make R&D funding decisions to meet particular goals, such as mitigating climate change or improving energy security, or to estimate the social returns to R&D, policy makers need to combine the information provided in this study on cost reduction potentials with an analysis of the macroeconomic implications of these technological changes. The authors conclude with recommendations for future directions on energy expert elicitations.

Journal Article - Reference Module in Earth Systems and Environmental Sciences

Technology Innovation and Energy

Energy technology innovation is the key to driving the technological changes that are necessary to meet the challenge of mitigating energy-related greenhouse gas emissions to avoid 'dangerous climate change.' Success in innovation requires the enhancement of public investment in the innovation process, the creation of markets for low-carbon technologies through stronger climate policies, and a continued focus on energy access and equity.

May 1, 2012: A train passes the Tokyo Institute of Technologies' new Environment & Energy Innovation Building, which is covered by 4,500 solar panels. Japan is shutting down its last nuclear reactor, adding urgency to calls for a green energy revolution.

AP Photo

Journal Article - Annual Review of Environment and Resources

The Energy Technology Innovation System

| November 2012

This article reviews the concept of an energy technology innovation system (ETIS). The ETIS is a systemic perspective on innovation comprising all aspects of energy transformations (supply and demand); all stages of the technology development cycle; as well as all the major innovation processes, feedbacks, actors, institutions, and networks.

A Chinese worker recharges an electric taxi at an EV charging station in Beijing, China, Jan. 9, 2011.

AP Photo

Journal Article - Energy

Integrated Energy Strategy for the Sustainable Development of China

    Authors:
  • Linwei Ma
  • Pei Liu
  • Zheng Li
  • Weidou Ni
| February 2011

The authors of this article propose, summarize, and present strategic ideas as policy implications for China's decision-makers. In conclusion, they determine that China should enhance strategic planning and regulation from a life cycle viewpoint of the whole society, prioritize energy saving, continuously improve incumbent energy, and rationally develop alternative energy.

A man stands beside his house as smoke is seen billowing from a thermoelectric power plant in Changchun, China on April 12, 2010. China still faces challenges in the transition to a low-carbon economy and needs integrated solution systems.

AP Photo

Journal Article - China Environment Series

Advancing Carbon Capture and Sequestration in China: A Global Learning Laboratory

| 2010/2011

China's dependency on coal fuels the country's phenomenal economic growth but at a major cost to the country's air and water quality, ultimately threatening human health and the country's continued economic growth. The Chinese government's efforts to put China onto a cleaner, low carbon development path have been substantial; however China's pollution and greenhouse gas emissions continue to grow. In an attempt to develop its own advanced coal generation technologies to improve the country's air quality and energy efficiency, the Chinese government is investing heavily in gasification and other technologies that can be employed in carbon capture and sequestration (CCS) applications. This investment has turned China into a global laboratory for CCS pilot projects, attracting foreign governments, multilateral institutions, nongovernmental organizations, and business partners.

A passerby looks at a coal power plant chimney between two office buildings at the Central Business District in Beijing, Feb. 6, 2009. China, which is heavily dependent on coal to fuel its growing economy, rivals the U.S. in GHG emissions.

AP Photo

Journal Article - Energy Policy

Catalyzing Strategic Transformation to a Low-carbon Economy: A CCS Roadmap for China

| January 2010

China now faces the three hard truths of thirsting for more oil, relying heavily on coal, and ranking first in global carbon dioxide (CO2) emissions. Given these truths, two key questions must be addressed to develop a low-carbon economy: how to use coal in a carbon-constrained future? How to increase domestic oil supply to enhance energy security? Carbon Capture and Storage (CCS) may be a technological solution that can deal with today's energy and environmental needs while enabling China to move closer to a low-carbon energy future. This paper has been developed to propose a possible CCS roadmap for China.

Jerusalem Mayor Nir Barkat, left, and Israeli-U.S. entrepreneur, Shai Agassi, founder a project developing electric cars and a network of charging points, next to an electric car and its charging station in Jerusalem, Oct. 22, 2009.

AP Photo

Journal Article - Innovations

Energy for Change: Introduction to the Special Issue on Energy & Climate Change

| Fall 2009

"Without energy, there is no economy. Without climate, there is no environment. Without economy and environment, there is no material well-being, no civil society, no personal or national security. The overriding problem associated with these realities, of course, is that the world has long been getting most of the energy its economies need from fossil fuels whose emissions are imperiling the climate that its environment needs."

Journal Article - Energy Policy

Global Learning on Carbon Capture and Storage: A Call for Strong International Cooperation on CCS Demonstration

| June 2009

In this Viewpoint, the authors argue that global coordination, transparency, cost-sharing and communication are key principles in facilitating efficient and cost-effective collaborative global learning on CCS.